The present disclosure relates generally to a wireless communication system and, more specifically, to techniques of small cell on/off in Heterogeneous network.
Heterogeneous network with dense small cells 92 controlled by low power nodes (LPNs) 82 located in a macro cell 91 have been attracting much attention, as illustrated in
As illustrated in NPL 1, a UE 83, which is capable of inter-eNB carrier aggregation (or dual-connectivity), can camp on the macro cell 91 as a primary cell (PCell) and move to RRC_CONNECTED mode. When the inter-eNB carrier-aggregation (CA)-capable UE 83 is in RRC_CONNECTED mode with the PCell, the MeNB 81 can configure/release a secondary cell (SCell) for the UE.
In NPL 3, the small cell on/off schemes have been considered to turn on/off small cells 92 semi-statically. An example of semi-static small cell on/off is illustrated in
As in
In Long Term Evolution (LTE), the UEs 83A and 83B need to detect a cell by searching a primary synchronization signal (PSS) and a secondary synchronization signal (SSS), defined in 3GPP specification TS 36.211, to identify a physical cell ID and frame boundary for timing synchronization. Next, the UEs 83A and 83B detect a cell-specific reference signal (CRS) by using the physical cell ID. Then, the UEs 83A and 83B carry out channel estimation based on the CRS to detect a physical downlink broadcast channel (PBCH), over which cell specific system information are transmitted.
After performing the cell synchronization and knowing the system information, the UEs 83A and 83B start radio resource management (RRM) measurement at T2 by using the CRS. In the RRM measurement, the UEs 83A and 83B each measures, for example, either or both of reference signal received power (RSRP) and reference signal received quality (RSRQ), as defined in 3GPP specification TS 36.133, and sends the measured RSRP and/or RSRQ to the serving cell (i.e., the macro cell 81 as the PCell). The reported RSRP and/or RSRQ are used by the MeNB 81 to rank between the different cells as input for cell reselection (i.e., SCell addition/modification) decisions. The process of cell detection/synchronization and RRM measurement costs time before the UEs 83A and 83B are connected to LPN 82B as their new SCell.
As illustrated in
At the UE 83B, the SCell is initially configured by the MeNB 81 after the LPN 82B is turned on. However, the initial SCell configuration also costs time due to the similar process of cell synchronization and RRM measurement/reporting.
The cost time results in the traffic time delay for UEs 83A and 83B to send or receive a new traffic data (i.e., user data) to or from LPN 82B.
In NPL 4, a scheme is considered to solve the above problem of traffic time delay. As indicated by an oval with the symbol C illustrated in
However, by detecting the signals with long duty cycle during the OFF period, the legacy UE behavior of RRM measurement until LTE Release 11 may input the zero samples of RSRP/RSRQ into the layer-1 (L1) filtering, which results in poor accuracy of RRM measurements. On the other hand, the new UE behavior of RRM measurements needs to be supported to input the correct samples of the signals with long duty cycle into the L1 filtering.
In one embodiment, an apparatus, a system or a network is configured to set a discovery period for a node to send a signal(s) necessary for cell detection and radio measurement performed by a UE before a cell, controlled by the node, is to be turned on in order to send a signal(s) for either or both of user data reception and transmission.
According to the above embodiment, a UE is able to detect the signal(s) for cell detection and RRM measurement in the configured discovery period by using legacy UE behavior of RRM measurement until LTE Release 11 to access a just turned-on cell with reduced traffic delay.
This has outlined the features and technical advantages of the present disclosure in order that the following description may be better understood. The features and advantages of the present disclosure will be more apparent from the following description in conjunction with the accompanying drawings. It is to be expressly understood, however, that each of the drawings is provided for the purpose of illustration and description only and is not intended as a definition of the limits of the present disclosure.
The preferred embodiments of the present invention will be explained by making references to the accompanied drawings. The embodiments used to describe the principles of the present disclosure are by way of illustration only and should not be construed in any way to limit the scope of the disclosure. Those skilled in the art will understand that the principles of the present disclosure may be implemented in any suitably arranged wireless network. In this technical area, a cell, a node, an eNB and a component carrier may have same meaning, and a primary cell (PCell) and a secondary cell (SCell) can also be interpreted as a master eNB and a secondary eNB (SeNB), respectively.
The MeNB 1 may include a transceiver 11, a data processor 12, a scheduler 13, an X2 interface 14, an LPN configuration unit 15, and a load monitor 16. The transceiver 11 provides various signal conditioning functions including amplifying and modulating for downlink transmission to the UE 3 and amplifying and de-modulating for uplink reception from the UE 3.
The data processor 12 generates a transport channel, according to scheduling by the scheduler 13, by performing error correction encoding, rate matching, interleaving, and the like. Further, the data processor 12 generates a radio frame by adding control information from the scheduler 13 and the LPN configuration unit 15 to the data sequence of the transport channel to generate a radio frame. Furthermore, the data processor 12 generates a transmission symbol sequence for each physical channel by performing scrambling and modulation symbol mapping based on various modulation schemes for the data sequence of the radio frame. The data processor 12 also restores received data from a reception symbol sequence supplied from the transceiver 11. Control information included in the obtained received data is transferred to the scheduler 13, the X2 interface 14, or the LPN configuration unit 15.
The X2 interface 14 provides communication function with other base stations including the LPN 2. The LPN configuration unit 15 sends and receives control signals to and from the LPN 2, via the X2 interface 14, for adding, deleting or modifying SCell for the UE 3. In one embodiment, the LPN configuration unit 15 may send to the LPN 2 a control signal including configuration information indicating at least one of the information of a starting time and a length of a discovery period applied on the LPN 2. Details of the discovery period are described later. In one embodiment, the LPN configuration unit 15 may also determine timing when the LPN 2 is being turned on (i.e., the starting time of the ON period) and instruct the LPN 2 to turn on.
The load monitor 16 monitors traffic load of the MeNB 1. The traffic load of the MeNB 1 may be used by the LPN configuration unit 15 for determining the starting time or the length of the discovery period applied on the LPN 2 or determining the timing when the LPN 2 is being turned on.
The LPN 2 may include a transceiver 21, a data processor 22, a scheduler 23, an X2 interface 24, and a load monitor 25. The transceiver 21, the data processor 22, the scheduler 23, and the X2 interface 24 have similar functions to those of the transceiver 11, the data processor 12, the scheduler 13, and the X2 interface 14 of the MeNB 1, respectively.
The load monitor 25 monitors traffic load of the LPN 2. The traffic load of the LPN 2 may be sent to the LPN configuration unit 15 via the X2 interface 24, and may be used by the LPN configuration unit 15 for determining the starting time or the length of the discovery period applied on other LPN or determining the timing when other LPN is being turned on.
The UE 3 may include a transceiver 31, a cell detection unit 32, RRM measurement unit 33, a data processor 34, and a channel-state-information (CSI) estimation unit 35. The transceiver 31 communicates with the Macro eNB 1 and the LPN 2 via an air interface. The transceiver 11 provides various signal conditioning functions including amplifying and modulating for uplink transmission to the MeNB 1 and the LPN 2 and amplifying and de-modulating for downlink reception from the MeNB 1 and the LPN 2.
The cell detection unit 32 performs a cell detection procedure. The cell detection procedure includes a cell search to detect the Cell ID and acquire frame synchronization of that cell based on sounding the PSS (i.e., primary synchronization channel (P-SCH)) and the SSS (i.e., secondary synchronization channel (S-SCH)). The cell detection procedure also includes acquisition of the system information based on demodulating the PBCH.
The RRM measurement unit 33 performs RRM measurement over the CRSs to measure the either or both RSRP and RSRQ from intra-frequency cells and inter-frequency cells.
The data processor 34 generates a transport channel, according to scheduling by the scheduler 13 at the MeNB 1, by performing error correction encoding, rate matching, interleaving, and the like. Further, the data processor 34 generates a radio frame by adding control information to the data sequence of the transport channel to generate a radio frame. Furthermore, the data processor 34 generates a transmission symbol sequence for each physical channel by performing scrambling and modulation symbol mapping based on various modulation schemes for the data sequence of the radio frame. The data processor 34 also restores received data from a reception symbol sequence supplied from the transceiver 31.
The CSI estimation unit 35 performs channel estimation in order to determine the phase reference for demodulating downlink control channels and downlink data based on monitoring the CRSs.
The Network configures the length DELTA.TD of the discovery period for the LPN 2B before the time T1. Note that, in drawings, “DELTA.” is denoted by the Greek letter delta. The discovery period is defined as a previous time period adjacent to the ON period. In other words, the discovery period immediately follows the OFF period and is immediately followed by the ON period. During the discovery period, the LPN 2B sends the signals necessary for cell detection and RRM measurement but does not sends data signals for user data transmission and reception with the UE 3A. The length DELTA.TD of the discovery period may be configured so as to ensure that legacy UEs until LTE Release 11 can perform cell detection and RRM measurement for the LPN 2B sufficiently and accurately. The network, which configures the length DELTA.TD applied on the LPN 2B, may include at least one of the MeNB 1, an LPN gateway (not shown), and an Operation, Administration, and Maintenance (OAM) system (not shown). The LPN gateway aggregates plurality of the LPNs 2 and connects them to a core network.
Returning to
As shown as step S11 in
At the UE 3A, the UE 3A carries out step S13 of
At the MeNB 1, the reported RRM measurement results (i.e., the measured RSRP/RSRQ) are received by the transceiver 11 and compared in the LPN configuration unit 15. After finding the RSRP/RSRQ of the LPN 2B is highest for the UE 3A, the MeNB 1 carries out step S16 of
In step S18 of
In the first embodiment, the length DELTA.TD of the discovery period for the LPN 2B may be adaptively configured according to traffic load to be shifted from the LPN 2A to the LPN 2B, which is monitored in the load monitor 25 at the LPN 2A controlling the conventional SCell. The traffic load monitored at the LPN 2A is, for example, a traffic load remained in a data buffer implemented in the LPN 2A, the number of active UEs accessed in LPN 2A, or an average traffic load of the LPN 2A.
As shown as step S21 in
At the UE 3B, the UE 3B carries out step S23 of
At the MeNB 1, the reported RRM measurement results (i.e., the measured RSRP/RSRQ) are received by the transceiver 11 and compared in the LPN configuration unit 15. After finding the RSRP/RSRQ of the LPN 2B is highest for the UE 3B, the MeNB 1 carries out step S26 of
In step S28 of
In the second embodiment, the length DELTA.TD of the discovery period for the LPN 2B may be configured according to relationship between the carrier frequencies of the MeNB 1 and the LPN 2B. In the case where the MeNB 1 and the LPN 2B use different carrier frequencies, a longer discovery period (e.g., from 2-4 seconds) may be configured for the LPN 2B for inter-frequency cell detection/RRM measurement. In the case where the MeNB 1 and the LPN 2B use the same carrier frequency, a shorter discovery period (e.g., 0.5-1 second) may be configured for the LPN 2B for intra-frequency cell detection/RRM measurement.
This embodiment illustrates a modification of the above-mentioned first and second embodiments.
Returning to
In step S34, the MeNB 1 sends the signals to the candidate LPNs {LPNi} to set the discovery period of DELTA.TD from T0. After the discovery period, in step S35, the MeNB 1 needs to compare the monitored traffic load at T1=T0+DELTA.TD with the predefined threshold THoffload-DELTA.THesti, where DELTA.THesti is the limitation of estimation error. If the practically monitored traffic load at the time T1 is not larger than THoffload-DELTA.THesti (NO in step S35), the MeNB 1 configures OFF period for the candidate LPNs {LPNi} in step S37. Otherwise, in step S36, the MeNB 1 further checks the number of the UEs to be accessed to each LPNi.
If the number of UEs at LPNi is larger than 0 (YES in step S36), the MeNB 1 configures ON period for the LPNi after the time T1 (steps S38 and S39). Otherwise, the MeNB 1 configures OFF period for the LPNi to save the power consumption (step S37).
The above first to third embodiments illustrate how to configure the starting time T1 and/or the length DELTA.T of the discovery period. The fourth embodiment shows some examples to configure parameters of the signals sent during the discovery period. The same assumption of the first embodiment is used in the fourth embodiment for illustration, where the network has already semi-statically configured the time T1 when the LPN 2A is being turned from ON to OFF and the LPN 2B is being turned from OFF to ON for user data transmission/reception. The UE 3 in this embodiment is in RRC_CONNECTED mode with the MeNB 1 as PCell and also served by LPN 2A as SCell during the ON period of the LPN 2A. The discovery period of DELTA.TD is configured before the LPN 2B is turned on. In order to reduce interference from the LPN 2B to the MeNB 1 or the LPN 2A during the discovery period, which is overlapped with the ON period of the source cell LPN1, the LPN 2B reduces the transmission power of the signals necessary for cell detection and RRM measurement, such as PSS/SSS, PBCH and CRS, during the discovery period.
The start time T1 of the discovery period may be informed to the UE 3 in the first to fourth embodiments. It is more efficient for the UE 3 to detect the LPN 2 during the discovery period because the UE 3 does not need to keep searching the LPN 2 in the OFF period.
Besides PSS/SSS, PBCH and CRS, other existing LTE signals, such as a Positioning Reference Signal (PRS) and a channel state information reference signal (CSI-RS), may also be used as the signals for cell detection and RRM measurements.
The above embodiments can be combined as appropriate.
The function of the LPN configuration unit 15 described in the above embodiments may be arranged in an apparatus different from the MeNB 1. For example, the LPN configuration unit 15 may be arranged in an LPN gateway or an OAM system.
The above embodiments have described the cases where the present disclosure is applied to LTE or LTE-Advanced systems. However, the application of the present disclosure is not limited to LTE or LTE-Advanced systems. Specifically, the present disclosure is also applicable to the case of a heterogeneous network including a large cell and at least one small cell that is located within the large cell and is capable of being turned on and off.
The LPN configuration unit 15 of the MeNB 1 explained above may be implemented by semiconductor processing devices, such as an application specific integrated circuit (ASIC) or a digital signal processor (DSP). Alternatively, the LPN configuration unit 15 may be implemented by causing a computer system including a processor such as a central processing unit (CPU) and a micro processing unit (MPU) to execute one or more programs. However, a part or the functions of the LPN configuration unit 15 may be also configured by hardware.
The processes performed by the LPN 2 and the UE 3 with respect to the procedures for turning on the small cell 20 may also be implemented by semiconductor processing devices, such as an ASIC or a DSP. Alternatively, these processes may be implemented by software, i.e., by causing a computer system to execute one or more programs.
These programs can be stored in various types of non-transitory computer-readable media and then provided to a computer. Such non-transitory computer-readable media include various types of tangible storage media, for example, magnetic storage media (e.g. flexible disks, magnetic tapes, hard disk drives), magneto-optical storage media (e.g. magneto-optical disks), compact disc read-only memories (CD-ROMs), CD-Rs, CD-R/Ws, semiconductor memories (e.g. mask ROMs, programmable ROMs (PROMs), erasable PROMs (EPROMs), flash ROMs, and random access memories (RAMs). Alternatively, the program may be provided to a computer through various types of transitory computer-readable media. Examples of the transitory computer-readable media include electric signals, optical signals, and electromagnetic waves. Transitory computer-readable media can provide the program to a computer through a wired communication line, such as electric wires or optical fibers, or through a wireless communication line.
While the foregoing disclosure discusses illustrative embodiments, it should be noted that various changes and modifications could be made herein without departing from the scope of the described embodiments as defined by the appended claims. Furthermore, although elements of the above embodiments may be described or claimed in the singular, the plural is contemplated unless limitation to the singular is explicitly stated. Additionally, all or a portion of any embodiment may be utilized with all or a portion of any other embodiments, unless stated otherwise.
| Filing Document | Filing Date | Country | Kind |
|---|---|---|---|
| PCT/JP2013/005679 | 9/25/2013 | WO | 00 |